BACKGROUND OF THE INVENTION
Field of the Invention
[0001] This invention relates to the ellipsometric analysis of samples enclosed within a
small cell, and more particularly to a window structure for the cell that allows accurate
ellipsometric measurements to be taken despite the presence of reflections from the
window surfaces.
Description of the Related Art
[0002] Ellipsometry is an established nondestructive optical technique for characterizing
the properties of surfaces and surface films, such as film thickness, refractive index,
surface oxidation, surface reaction kinetics, catalysis, electrochemistry, corrosion,
passivation and anodization. It is described for example in Spanier, "Ellipsometry
- A Century Old New Technique",
Industrial Research, September 1975, pages 73-76. The technique involves directing an elliptically polarized
light beam onto the surface of a sample to be analyzed, and detecting the beam reflected
from the surface to determine changes in its polarization state; such changes correspond
to the properties of the sample surface. Measurements are obtained for tan ψ, the
change in the amplitude ratio of the parallel component to the perpendicular component
of the light wave upon reflection, and Δ, the change in the phase difference between
the parallel component and the perpendicular component of the light wave upon reflection.
The quantities ψ and Δ are functions of the surface's optical constants, the wavelength
of the light used, the angle of incidence, the optical constants of the ambient medium
and, for a film covered surface, the thickness and optical constants of the film.
ψ and Δ are both measured in degrees, and each different combination of these two
quantities corresponds to a unique set of surface conditions.
[0003] A conventional ellipsometric measurement system is illustrated in simplified form
in FIG. 1. A laser 2 generates a beam 4 that is linearly polarized by a polarizer
6, with the linear polarization indicated by polarization vector 8. The beam is typically
oriented at about 70° to vertical, and passes through a compensator 10 that converts
it to an elliptical polarization, as indicated by the polarization ellipse 12.
[0004] The elliptically polarized beam is reflected off the surface of a sample 14, which
is assumed in this illustration to be horizontal, and which is shown as having a surface
film 16, and is transmitted through an aperture 18 to an analyzer 20. The analyzer
is a high quality crystal polarizer that determines the plane of polarization of the
reflected linearly polarized light. The process of reflection changes the beam's polarization
in accordance with the film thickness and the optical characteristics of the film
and sample. To make a measurement, the polarizer 6 is adjusted in such a way that
the combined effect of the polarizer, compensator, sample, and film causes the beam
entering the analyzer to be linearly polarized, as indicated by linear polarization
vector 22. A filter 24 eliminates unwanted background light from the beam transmitted
through the analyzer 20 so that measurements can be made in normal room conditions,
with the filtered beam sensed by a photodetector 26. The photodetector 26 transmits
an electrical signal corresponding to the beam intensity to an extinction meter 28.
[0005] There are certain settings of the polarizer that cause the beam reflected from the
specimen to be completely linearly polarized. At such settings the analyzer 20 can
be rotated to a position at which almost no light reaches the photodetector 26, and
the extinction meter 28 moves to its lowest reading. Measurements are taken at two
such settings, from which the film thickness, refractive index and other characteristics
can be determined with the use of graphs, tables or calculators.
[0006] In certain applications it is desirable to obtain ellipsometry measurements within
a controlled environment. For such cases several techniques have been used to allow
a sample to be analyzed without exposing it to the environment in which the analysis
equipment is located; three such arrangements are illustrated in FIGs. 2, 3 and 4.
In FIG. 2 a specimen 30 to be analyzed is placed within a sealed chamber 32. Beam
entrance and exit ports 34 and 36 into the chamber have respective transparent windows
38 and 40 that allow an analysis beam to be transmitted into and reflected out of
the chamber, without impairing the sealed environment within the chamber. Apparatus
comparable to that shown in FIG. 1 is used to produce an elliptically polarized entrance
beam 42 that is directed through the entrance window 38 onto the specimen 30, and
to analyze the exit beam 44 reflected off the specimen. The beams 42 and 44 are generally
transmitted at right angles to the surfaces of their respective windows 38 and 40.
Such an arrangement is known in the art from EP-A-0 484 879.
[0007] In FIG. 3 a sealed chamber 46 is shown with only a single entrance/exit port 48,
and a transparent window 50 sealing the port. An elliptically polarized entry beam
52 is transmitted through the window 50 and reflected off the specimen 30 within the
chamber. The reflected beam is redirected back onto the specimen by a mirror 54, but
at an altered angle so that it reflects off a different portion of the specimen to
exit from the chamber as exit beam 56. The entry and exit beams 52 and 56 are offset
from each other both spatially and angularly, and the analysis of the exit beam is
modified to account for the double reflection off the specimen.
[0008] In FIG. 4 another chamber 58 is shown with open entry and exit ports 60 and 62, respectively.
This arrangement is similar to that of FIG. 2, except the transparent windows 38 and
40 of FIG. 2 are omitted and a gas inlet port 64 is provided in the chamber 58. An
inert gas such as nitrogen (indicated by arrows 66) is admitted into the chamber under
pressure through gas port 64 and flows out of both beam ports 60 and 62. This outward
flow of inert gas allows ellipsometric analysis to be performed, while effectively
sealing the interior of the chamber and the specimen 30 from the outside environment.
[0009] A more recent application for ellipsometric measurements concerns monitoring the
surface condition of a sample contained within a small volume cell. The purpose of
this application is to minimize the volume of wet chemical reagents used in the fabrication
of microelectronic circuits. It is illustrated in FIG. 5, and involves the provision
of a small volume cell 68 that houses a semiconductor wafer 70, or a portion of a
wafer, for chemical processing prior to the fabrication of microelectronic circuitry
on the wafer. Such preparation normally involves cleaning, etching, and other wet
chemical processing.
[0010] The specially designed cell 68 of FIG. 5 substantially reduces the volume of wet
chemicals required for the processing, and is the subject of pending patent application
Serial No. 899,792 filed June 19, 1992 by Gerald A. Garwood, Jr., a co-inventor of
the present invention. The pending application is assigned to the Santa Barbara Research
Center, the assignee of the present application. The wafer 70 is shown supported directly
by the cell base 72, although it may alternately be supported off the base by means
of standoffs if processing of both faces of the wafer is desired. The cell 68 is covered
by a flat transparent lid 74, which is preferably glass but might alternately be formed
from a transparent plastic that does not react with the chemicals used in the substrate
processing. The lid 74 is fastened to the base 72 by means of bolts 76 around its
edge, with an O-ring 78 sandwiched between the lid and base to seal the interior of
the cell. The wet chemicals used to treat the wafer are cycled through the cell by
means of an inlet port 80 and an outlet port 82 that extend through the base from
the exterior of the cell to a location inward of O-ring 78. The clearance between
lid 74 and wafer 70 is kept quite small, as is the peripheral spacing between wafer
70 and O-ring 78, thereby greatly reducing the volume of wet chemicals that would
otherwise be required to prepare the wafer.
[0011] The chemical processing cell 68 is at least theoretically adapted to ellipsometry
measurements to monitor the wafer surface at various stages of the processing. In
principal, this can be accomplished by directing an elliptically polarized beam 84
at a angle through the lid 74 and onto the upper surface of the wafer 70, with the
beam reflecting off the wafer and proceeding back through the lid for analysis; the
actual ellipsometry equipment is not shown in FIG. 5, but it would be comparable to
that illustrated in FIG. 1. Although the beam 84 is refracted during both passes through
the lid 74, these angular deviations cancel each other and the exit beam emerges from
the lid at the same angle to vertical as the entry beam (assuming the surfaces of
the lid and wafer are parallel). This is important when using the cell 68 in a standard
ellipsometry setup, in which the beam entry and exit angles are generally fixed.
[0012] A problem in making ellipsometry measurements with the described small volume cell
is illustrated in FIG. 6, which shows the elliptically polarized beam 84 incident
on the upper surface of the flat transparent lid 74. This incoming beam gives rise
to a set of parallel rays that emerge from the cell, due to partial reflections at
the upper (outer) and lower (inner) lid surfaces. The primary reflections are an initial
reflection of the incoming beam from the lid's upper surface (ray 86), a reflection
of the incoming beam from the lid's lower surface, after undergoing refraction at
the upper surface/air interface (ray 88), and a double reflection of the outgoing
beam from the lid's upper and lower surfaces, after refraction at the lower surface/air
interface (ray 90). The outgoing beam itself after reflection from the wafer 70 is
indicated by ray 92. Additional parallel rays that emerge from the lid due to multiple
reflections are also present, but are of much lower intensity. Because of the small
vertical spacing between the lid 74 and wafer 70 to minimize the volume of chemical
reagents used, the principal rays 86, 88 and 90 and outgoing beam 92 are grouped close
together and two or more of them can enter the analyzer aperture. However, it is only
beam 92 that carries the desired information which represents the characteristics
of the wafer 70. The other rays carry conflicting and unwanted information that interfere
with a proper measurement of the sample within the cell.
[0013] The upper and lower lid surfaces could be coated with an antireflection coating to
reduce or even eliminate the undesired reflections. However, an antireflection coating
would produce further changes in the polarization state of the light passing through
it, and the coating on the bottom surface of the lid would be exposed to all the chemical
reagents that flow through the cell to treat the wafer. The addition of antireflection
coatings is thus not a viable solution. An alternate approach would be to increase
the spacing between the reflected rays and the principal ray 92 enough to keep the
reflected rays out of the analyzer aperture by substantially increasing the distance
between the wafer and the cell lid. This, however, would greatly increase the cell
volume and thereby defeat the purpose of having a small cell.
SUMMARY OF THE INVENTION
[0014] The present invention seeks to provide an ellipsometry sample cell that effectively
segregates reflected rays from the principal beam in the ellipsometry process, and
yet is compatible with small volume cells having a narrow spacing between the cell
lid and the sample enclosed within the cell.
[0015] These goals are achieved with a cell housing that includes entrance and exit windows
for the ellipsometry beam that are configured to direct the principal beam and the
reflections thereof at different angles, so that the beam but not its reflections
enters the ellipsometry analyzer. The windows are preferably implemented in a unitary
lid with a flat inner surface, and an outer surface that tapers on each side from
a ridge to form flat entrance and exit windows. The outer surfaces of the two windows
are preferably flat and at substantially equal angles of about 1°-5° to the lid's
inner surface, and are symmetrically arranged on opposite sides of the ridge. The
housing is positioned with respect to the beam so that a reflection of the beam off
the entrance window's inner surface exits the housing through the outer surface of
the same entrance window.
[0016] The new lid design facilitates in situ ellipsometry for a small volume cell, thereby
providing an objective, operator-independent and reliable means of monitoring the
efficacy of cleaning and treating processes applied to the wafer.
[0017] Further features and advantages of the invention will be apparent to those skilled
in the art from the following detailed description, taken together with the accompanying
drawings.
BRIEF DESCRIPTION OF THE DRAWINGS
[0018]
FIG. 1 is a diagram, described above, of a conventional ellipsometry system;
FIGs. 2-4 are simplified elevation views, described above, of prior ellipsometry specimen
housings that employ different types of beam windows;
FIG. 5 is a sectional view, described above, of a small volume cell used for cleaning
and processing a semiconductor wafer;
FIG. 6 is a fragmentary sectional view, described above, illustrating the reflection
problem encountered by the cell of FIG. 5 during ellipsometry;
FIG. 7 is a simplified fragmentary sectional view, not to scale, of a new ellipsometry
cell lid in accordance with the invention;
FIG. 8 is a fragmentary sectional view of the new cell lid provided by the invention,
with a more accurate scaling than FIG. 7; and
FIG. 9 is a graph plotting the light beam exit angle from the new lid as a function
of the lid's upper surface angle and refractive index, from which a calibrated correction
for measurements obtained with the invention may be made.
DETAILED DESCRIPTION OF THE INVENTION
[0019] The invention provides an ellipsometry cell with a novel lid in which entrance and
exit windows are formed at different angles to segregate the principal ellipsometry
beam from its reflections at the outer and inner lid surfaces. A preferred embodiment
for the lid is shown in FIG. 7, in which only the lid 94, the underlying ellipsometry
sample such as semiconductor wafer 96, the ellipsometry analyzer 20 and its associated
aperture 18 are illustrated. The lid 94 can be employed in a cell such as that shown
in FIG. 5, and can in effect be substituted for the flat lid 74 shown in FIG. 5 and
attached to the cell in the same manner. The upper (outer) surface of the lid 94 is
divided into an entrance window 98 and an exit window 100, with the two windows meeting
at a central ridge 102 from which each window tapers down towards the opposite side
of the lid. The entrance and exit windows are preferably flat, although more complicated
geometric configurations can be designed that would achieve the optical segregation
between the principal and reflected ellipsometry beams obtained by the invention.
[0020] The entrance and exit windows 98 and 100 are preferably fashioned at equal angles
θ to horizontal, preferably within the range of about 1°-5°. The larger angles produce
a greater dispersion between the principal and reflected beams but also distort the
resultant ellipsometry reading to a greater degree; the smaller angles produce a smaller
dispersion, but have less of an effect on the ellipsometry reading. As discussed below,
the distortion in the ellipsometry reading is due to the refraction of the beam, and
can be calibrated out in the final reading.
[0021] The inner (bottom) lid surface 104 is preferably flat and parallel to the inner (top)
support surface of the cell base 72. This allows for a small interior cell volume,
and also causes the ellipsometry beam emerging from the exit window to have the same
angle to vertical as the entrance beam; this is important for accommodating the cell
to a standard ellipsometer. Conventional grinding and polishing techniques are used
to achieve the desired geometry for the lid, which can be formed from the same transparent
materials as prior lids.
[0022] Consider an entry ellipsometry beam 106 that is directed onto the outer surface of
the entry window. The beam is refracted at the entry window's outer and inner surfaces,
reflected off the sample 96 back into the lid, refracted at the exit window's inner
and outer surfaces, and emerges as an exit beam 108 that passes through aperture 18
to the analyzer 20. Due to the symmetry of the entrance and exit windows, the exit
beam 108 emerges at the same angle to vertical as the entrance beam 106. Partial reflections
of the beam from the lid's outer and inner surfaces also occur, in a manner similar
to that illustrated in FIG. 6. Specifically, one ray 110 is reflected from the entry
window's outer surface, a second ray 112 is reflected from the entry window's inner
surface, and a third ray 114 is reflected from the exit window's outer and inner surfaces.
The reflected rays 110, 112 and 114, however, are no longer parallel to the principal
exit beam 108. Rather, the angled outer lid surface directs them at different angles
from the exit beam 108. With an appropriate selection of system dimensions, the reflected
rays will diverge sufficiently from the exit beam 108 to ensure that they do not pass
through the analyzer aperture 18.
[0023] For a specific example, assume that the entry and exit beams 106 and 108 are both
at a 70° angle to vertical (a vertical axis is labeled V in the figure), that the
refractive index of the lid material is 1.55 (corresponding to glass), and that the
pitch angle of the outer surfaces for the entry and exit windows is 1° to horizontal.
With these assumptions, ray 110 will emerge at an angle of 68.0° to vertical, ray
112 at an angle of 76.475° and ray 114 at an angle of 63.851°.
[0024] The principal exit beam 108 thus emerges at the desired angle of 70°, while the reflected
rays are diverted away from it. Given a typical spacing of 90mm from the sample location
to the analyzer aperture 18, the smallest angular difference between the exit beam
108 and any of the reflection rays (70.0° - 68.0° = 2.0°) leads to a minimum displacement
between the principal beam and the reflection rays of 3.1mm at the aperture location;
this is larger than the typical aperture diameter of 1.8mm, and is also larger than
the typical beam diameter of 1mm. The net result is to permit ellipsometry measurements
to be performed on a sample that is contained within the desired small volume cell
without interference from the reflections.
[0025] It is necessary to align the entry beam 106 fairly carefully with respect to the
cell so that the ray 112 reflected from the inner surface of the entry window emerges
from the lid on the entry window side of ridge 102, while the principal exit beam
108 emerges on the exit window side of the ridge; if they both emerge through the
same window they will be parallel. FIG. 8 is a modification of FIG. 7 that more accurately
illustrates the dimensions involved for a small cell application, and demonstrates
the need for careful alignment. The close spacing between the lid 94 and the semiconductor
wafer 96 results in a proximity of reflected ray 112 to the principal exit beam 108.
It is desirable that the ridge 102 separating the entrance and exit windows be well
defined and not overly rounded, to maintain the segregation of reflected ray 112 from
exit beam 108. For a beam diameter of 1mm and θ=1°, the minimum gap between the inner
surface of the lid and the upper substrate surface to ensure that the ray 112 and
exit beam 108 are fully on opposite sides of the ridge is 0.31mm; for θ=2° the minimum
gap size is 0.25mm.
[0026] The angle of the lid's outer surface changes the angle at which the principal beam
106 strikes the sample surface, and this in turn alters the sample's effect upon the
beam polarization. While a greater angle θ will reduce the precision required in the
positioning of the beam relative to the lid, it will increase the angular deviation
at which the beam strikes the sample and will thus produce a greater change in the
ellipsometer reading. This effect is illustrated in FIG. 9, in which the angle (to
vertical) at which the entry beam strikes the sample is plotted against θ for different
values of refractive index n. This alteration in the ellipsometry values can be compensated
by taking measurements on known samples both inside and outside the cell to produce
a calibration chart between the two sets of measurements. When measurements are later
taken for an unknown sample within the cell, the calibration chart can be used to
adjust the measured results by eliminating the effects of the change in beam angle
induced by the angled lid.
[0027] In a similar fashion, transmitting the beam through the lid will itself introduce
modest changes in the ellipsometry parameter values, irrespective of any changes in
the angle at which the beam strikes the sample. Again, a calibration chart can be
established by taking measurements on known samples using a lid with parallel inner
and outer faces, with a thick lid and a large spacing between the lid and the sample
to separate the emerging rays.
[0028] The lid's thickness will generally be on the order of about 4mm. It could theoretically
be made thinner, but this could impair the strength and rigidity required for screwing
the lid to the base around its edge. Thicker lids may be required for larger cells,
which are typically about 4-8cm wide.
[0029] While a particular embodiment of the invention has been shown and described, numerous
variations and alternate embodiments will occur to those skilled in the art. For example,
the outer lid surface might be provided with a rounded dome shape rather than a sharp
ridge to separate the entrance and exit windows, although this would increase the
precision required in positioning the lid relative to the ellipsometry beam, and could
result in the exit beam having an angle different from the entry beam. Accordingly,
it is intended that the invention be limited only in terms of the appended claims.
1. An ellipsometry system having means for holding a sample to be ellipsometrically analyzed,
means for directing an elliptically polarized beam onto said sample, and means for
analyzing the beam reflected from the sample, comprising the provision of said sample
holding means as:
a housing for enclosing said sample, and
entrance and exit windows for said housing that are substantially transparent to and
partially reflect said beam, said windows being configured to direct said beam and
window reflections at different angles so that said beam but not said window reflections
enter said analyzing means.
2. The ellipsometry system of claim 1, said windows comprising respective portions of
a unitary lid for said housing, said window portions being oriented at different respective
angles to said beam.
3. The ellipsometry system of claim 2, wherein the inner surface of said lid is substantially
flat and the outer surface tapers on each side from a ridge, the opposite sides of
said ridge comprising said entrance and exit windows, respectively.
4. The ellipsometry system of claim 3, wherein the inner surface of said lid is disposed
at substantially equal angles to the axes of said beam directing means and of said
analyzing means, and its outer surface on each side of said ridge is substantially
flat.
5. The ellipsometry system of claim 3, wherein the outer surfaces of said entrance and
exit windows are disposed at substantially equal angles to the lid's inner surface.
6. The ellipsometry system of claim 5, wherein said entrance and exit windows are substantially
symmetrical on opposite sides of said ridge.
7. The ellipsometry system of claim 3, wherein the outer surfaces of said entrance and
exit windows are each disposed at an angle within the approximate range of 1°-5° to
the lid's inner surface.
8. The ellipsometry system of claim 3, wherein said housing is positioned with respect
to said beam directing means so that a reflection of said beam off the inner surface
of said entrance window exits the housing through the outer surface of said entrance
window.
9. A cell for holding a sample for ellipsometric analysis, comprising:
a base,
means for supporting a sample with respect to said base,
a substantially transparent lid having inner and outer surfaces, and
means for holding said lid in sealed relation to said base,
said lid being configured so that, in response to an ellipsometric analysis beam being
transmitted through the lid and reflected off a sample within the cell back out through
the lid, primary reflections of the beam from the lid's upper and lower surfaces are
directed out of the cell at different angles from the analysis beam.
10. The sample cell of claim 9, wherein the outer lid surface comprises a plurality of
sections that are oriented at different respective angles relative to the base.
1. Ellipsometrie-System mit einer Einrichtung zum Halten einer Probe, die ellipsometrisch
analysiert werden soll, einer Einrichtung, mit der ein elliptisch polarisierter Strahl
auf die Probe gelenkt wird, und einer Einrichtung zum Analysieren des von der Probe
reflektierten Strahls, wobei die Einrichtung zum Halten der Probe
ein Gehäuse zum Umschließen der Probe und
Eingangs- und Ausgangsfenster für das Gehäuse, die für den Strahl im wesentlichen
transparent sind und den Strahl teilweise reflektieren, wobei die Fenster so angeordnet
sind, daß der Strahl und Reflexionen an den Fenstern so gelenkt werden, daß der Strahl,
aber nicht die Reflexionen an den Fenstern in die Analysiereinrichtung eintritt,
umfaßt.
2. Ellipsometrie-System nach Anspruch 1, wobei die Fenster entsprechende Bereiche eines
einteiligen Deckels für das Gehäuse umfassen und die Fensterbereiche unter unterschiedlichen
entsprechenden Winkeln zu dem Strahl ausgerichtet sind.
3. Ellipsometrie-System nach Anspruch 2, worin die innere Oberfläche des Deckels im wesentlichen
flach ist, und die äußere Oberfläche sich auf jeder Seite von einem First aus verjüngt,
wobei die gegenüberliegenden Seiten des Firsts die Eintritts- bzw. Austrittsfenster
umfassen.
4. Ellipsometrie-System nach Anspruch 3, worin die innere Oberfläche des Deckels unter
im wesentlichen gleichen Winkeln zu den Achsen der Strahllenkeinrichtung und der Analysiereinrichtung
angeordnet ist und seine äußere Oberfläche zu jeder Seite des Firsts im wesentlichen
flach ist.
5. Ellipsometrie-System nach Anspruch 3, worin die äußeren Oberflächen der Eintritts-
und Austrittsfenster unter im wesentlichen gleichen Winkeln zur inneren Oberfläche
des Deckels angeordnet sind.
6. Ellipsometrie-System nach Anspruch 5, worin die Eintritts- und Austrittsfenster im
wesentlichen symmetrisch auf gegenüberliegenden Seiten des Firsts sind.
7. Ellipsometrie-System nach Anspruch 3, worin die äußeren Oberflächen der Eintritts-
und Austrittsfenster jeweils unter einem Winkel innerhalb des ungefähren Bereiches
von 1° bis 5° zur inneren Oberfläche des Deckels angeordnet sind.
8. Ellipsometrie-System nach Anspruch 3, worin das Gehäuse bezüglich der Strahllenkeinrichtung
so angeordnet ist, daß eine Reflexion des Strahls von der inneren Oberfläche des Eintrittsfenster
das Gehäuse durch die äußere Oberfläche des Eintrittsfensters verläßt.
9. Eine Zelle zum Halten einer Probe für ellipsometrische Untersuchung, mit:
einem Sockel,
einer Einrichtung zum Tragen einer Probe bezüglich der Grundplatte,
einem im wesentlichen transparenter Deckel, der innere und äußere Oberflächen besitzt,
einer Einrichtung zum Halten des Deckels in dichter Anordnung zum Sockel,
wobei der Deckel so ausgestaltet ist, daß in Antwort auf einen ellipsometrischen Untersuchungsstrahl,
der durch den Deckel durchgeschickt wird und von einer Probe innerhalb der Zelle durch
den Deckel zurück nach außen reflektiert wird, primäre Reflexionen des Strahls von
den oberen und unteren Oberflächen des Deckels unter unterschiedlichen Winkeln vom
Untersuchungsstrahl aus der Zelle nach außen gelenkt werden.
10. Probenzelle nach Anspruch 9, worin die äußere Deckeloberfläche eine Vielzahl von Abschnitten,
die unter unterschiedlichen entsprechenden Winkeln bezüglich des Sockels ausgerichtet
sind, umfaßt.
1. Système d'ellipsométrie comportant des moyens pour maintenir un échantillon devant
être soumis à une analyse ellipsométrique, des moyens pour diriger un faisceau à polarisation
elliptique sur ledit échantillon, et des moyens pour analyser le faisceau revenant
par réflexion de l'échantillon, comportant la fourniture desdits moyens de maintien
d'échantillon sous la forme de :
un corps destiné à enfermer ledit échantillon, et
des fenêtres d'entrée et de sortie pour ledit corps qui sont sensiblement transparentes
audit faisceau et le réfléchissent partiellement, lesdites fenêtres étant configurées
de façon à diriger ledit faisceau et les réflexions des fenêtres sous des angles différents
afin que ledit faisceau, mais non lesdites réflexions des fenêtres, entre dans lesdits
moyens d'analyse.
2. Système d'ellipsométrie selon la revendication 1, dans lequel lesdites fenêtres comprennent
des parties respectives d'un couvercle monobloc pour ledit corps, lesdites parties
des fenêtres étant orientées sous des angles respectifs différents par rapport audit
faisceau.
3. Système d'ellipsométrie selon la revendication 2, dans lequel la surface intérieure
dudit couvercle est sensiblement plate et la surface extérieure est inclinée à partir
d'une arête, sur chaque côté, les côtés opposés de ladite arête comprenant lesdites
fenêtres d'entrée et de sortie, respectivement.
4. Système d'ellipsométrie selon la revendication 3, dans lequel la surface intérieure
dudit couvercle est disposée de façon à former des angles sensiblement égaux avec
les axes desdits moyens dirigeant le faisceau et desdits moyens d'analyse, et sa surface
extérieure, sur chaque côté de ladite arête, est sensiblement plate.
5. Système d'ellipsométrie selon la revendication 3, dans lequel les surfaces extérieures
desdites fenêtres d'entrée et de sortie sont disposées de façon à former des angles
sensiblement égaux avec la surface intérieure du couvercle.
6. Système d'ellipsométrie selon la revendication 5, dans lequel lesdites fenêtres d'entrée
et de sortie sont sensiblement symétriques sur des côtés opposés de ladite arête.
7. Système d'ellipsométrie selon la revendication 3, dans lequel les surfaces extérieures
desdites fenêtres d'entrée et de sortie sont disposées chacune de façon à former un
angle compris dans la plage approximative de 1°-5° avec la surface intérieure du couvercle.
8. Système d'ellipsométrie selon la revendication 3, dans lequel ledit corps est positionné
par rapport auxdits moyens dirigeant le faisceau de manière qu'une réflexion dudit
faisceau en dehors de la surface intérieure de ladite fenêtre d'entrée sorte du corps
à travers la surface extérieure de ladite fenêtre d'entrée.
9. Cellule pour maintenir un échantillon pour une analyse ellipsométrique, comportant
:
une base,
des moyens destinés à supporter un échantillon par rapport à ladite base,
un couvercle sensiblement transparent ayant des surfaces intérieure et extérieure,
et
des moyens destinés à maintenir ledit couvercle en relation d'étanchéité avec ladite
base,
ledit couvercle étant configuré de manière que, en réponse à un faisceau d'analyse
ellipsométrique transmis à travers le couvercle et réfléchi par un échantillon à l'intérieur
de la cellule de façon à ressortir à travers le couvercle, des réflexions primaires
du faisceau provenant des surfaces supérieure et inférieure du couvercle soient dirigées
vers l'extérieur de la cellule sous des angles différents par rapport au faisceau
d'analyse.
10. Cellule à échantillon selon la revendication 9, dans laquelle la surface extérieure
du couvercle comprend plusieurs sections qui sont orientées sur des angles respectifs
différents par rapport à la base.